Skip to content

Deep Hole Drilling Machine Guarding and Safety Interlock Guide

Deep hole drilling machines present hazards that differ from standard machine tools. The high-pressure coolant system, exposed rotating drill shank, and heavy chip mass require guarding solutions beyond a standard CNC enclosure. Understanding these unique hazards is essential for operator safety and regulatory compliance.

Hazard Identification

Deep Hole Drilling Specific Hazards

HazardSourceRisk LevelTypical Injury
High-pressure coolant injectionCoolant system at 50–250 barCriticalFluid injection into skin, blindness
Rotating drill shank exposureLong drill extending from spindle to bushingHighEntanglement, crushing
Rotating guide bushingRotating bushing on some machine typesHighEntanglement
Chip burnsHot chips from BTA drilling (up to 800°C)ModerateBurns
Heavy chip massLarge chip bins weighing 50–500 kgModerateCrushing during removal
Coolant mist inhalationOil-based coolant aerosolModerateRespiratory issues
Hydraulic system pressureHydraulics at 50–200 barHighFluid injection, component ejection
Part weight (large machines)Workpiece up to several tonsHighCrushing during loading

Warning: Coolant injection injuries are the most serious hazard unique to deep hole drilling. Coolant at 100+ bar can penetrate the skin, inject bacteria and coolant chemicals into the body, and cause severe tissue damage requiring surgical intervention. Any coolant leak at high pressure is a safety hazard.

Guarding Requirements

Guard Types

Guard TypeApplicationStandardRequirement
Fixed guardCoolant system, pump area, electrical cabinetISO 14120Tool-removal fasteners only
Interlocked guardMachine access doors, chip conveyor accessISO 14120 + ISO 13849PL d or higher
Adjustable guardChip window, coolant nozzle accessISO 14120Require tool to adjust
Distance guardPerimeter fencingISO 13857Minimum distance calculated per standard
Protective barrierRotating drill shank areaISO 14120Prevent accidental contact

Rotating Drill Shank Guarding

The exposed drill shank between the spindle and the guide bushing is a unique hazard on deep hole drilling machines. Unlike standard CNC machines where the tool is enclosed, the gun drill extends forward from the spindle and rotates at several thousand RPM.

Guarding MethodDescriptionBest For
Telescopic tube guardTube extends and retracts with drill feedFull protection, automatic
Split tube guardTwo halves that close over drill shankLoading access needed
Light curtain across drill pathPresence sensing — stops spindle if brokenQuick access, flexible
Distance guard (restricted access zone)Physical barrier at safe distanceManual loading, low automation
Full enclosure with interlocked doorsComplete machine enclosureAutomated production

Tip: For the rotating drill shank, a telescopic tube guard provides the best protection while allowing full machine function. It is commonly specified on deep hole drilling machines and eliminates the most common serious injury risk — entanglement with the exposed drill shank.

Safety Interlock Systems

Interlock Categories (Per ISO 13849)

Performance Level (PL)Risk ReductionTypical ApplicationRedundancy
PL aLowestNon-critical, low riskNone
PL bLowMinor hazard, frequent accessSingle channel
PL cModerateModerate riskSingle channel, monitored
PL dHighSerious injury riskDual channel, monitored
PL eHighestLife-threateningDual channel, diverse

Deep Hole Drilling Interlock Requirements

Safety FunctionRequired PLDevice TypeNotes
Access door interlock (spindle area)PL dSafety switch with guard lockingPrevent access while spindle rotates
Light curtain (drill shank area)PL dType 4 safety light curtainMuting permitted during loading
E-stop (all stations)PL eDual-channel E-stopAt least 2 per machine
Coolant pressure monitoringPL cPressure switchStop feed on pressure loss
Chip conveyor interlockPL cSafety limit switchStop conveyor on guard open
Hydraulic system pressure monitoringPL cPressure switchSafe state on pressure loss
Spindle speed monitoringPL dSpeed encoderSafe speed limit
Door lock monitoringPL dSolenoid lock with feedbackPrevent opening during cycle

Coolant System Safety

High-Pressure Coolant Safety Devices

DeviceFunctionRequired Pressure Rating
Pressure relief valveLimits maximum system pressureSet at 110% of operating pressure
Burst discEmergency overpressure relief120–130% of operating pressure
Flexible hose (high-pressure rated)Connect pump to machine150% of maximum pump pressure
Safety shield on flexible hosesContain hose burstRequired for oil-based coolant
Pressure gauge with limit switchMachine stop on pressure lossAt pump outlet and machine inlet
Check valvePrevent backflowOn coolant return line
Drip tray under coolant connectionsContain spillsAbsorbent material if oil-based

Coolant System Inspection Schedule

ComponentInspectionFrequency
Flexible hosesVisual — wear, kinking, soft spotsMonthly
Pressure relief valveFunction testQuarterly
Burst discVisual — no leakageMonthly
Pressure gaugeCalibration checkAnnually
Safety shieldCondition checkMonthly
Hose connectionsTightness checkQuarterly

Risk Assessment Methodology

Risk Assessment Steps

StepActivityOutput
1Identify all machine hazardsHazard list
2Determine risk level for each hazardRisk matrix score
3Select risk reduction measuresGuarding, interlock, procedure
4Implement risk reductionPhysical and procedural changes
5Verify residual risk is acceptableRisk assessment sign-off
6Document risk assessmentRisk assessment report
7Review and update periodicallyAnnual review

Risk Matrix

ProbabilitySlight InjurySerious InjurySevere InjuryFatality
Very likelyMediumHighCriticalCritical
LikelyMediumHighHighCritical
PossibleLowMediumHighHigh
UnlikelyLowLowMediumMedium
RemoteNegligibleLowLowMedium

Compliance Standards

Applicable Standards

StandardTitleApplicability
ISO 12100Risk Assessment and Risk ReductionAll machines
ISO 13849-1Safety of Machinery — Control SystemsAll safety-related control systems
ISO 14120Guards — General RequirementsAll guards
ISO 13857Safety DistancesAll access points
ISO 14119Interlocking DevicesAll interlocked guards
IEC 60204-1Electrical Equipment of MachinesAll electrical systems
ISO 4414Pneumatic Fluid PowerPneumatic systems
ISO 4413Hydraulic Fluid PowerHydraulic systems
EN 12413Safety Requirements for Grinding WheelsTool grinding equipment

Verification Checklist

Safety System Verification

ItemCheckPass/Fail
Fixed guards installed and secureVisual
Interlocked doors stop spindle when openedTest
Light curtain breaks stop machineTest
E-stop stops all motionTest
Coolant pressure loss stops feedSimulate
Rotating drill shank is guardedVisual
High-pressure hoses within service lifeDate check
Pressure relief valve tagged and sealedVisual
Safety labels legible and in placeVisual
Risk assessment documented and currentDocument check

FAQ

What safety standards apply to deep hole drilling machines?

Deep hole drilling machines must comply with ISO 12100 (risk assessment), ISO 13849 (safety control systems), and ISO 14120 (guards). Additionally, national regulations (CE marking for Europe, OSHA for the US) apply. Coolant systems must comply with pressure vessel standards (e.g., ASME, PED) for systems above certain pressure thresholds.

Is high-pressure coolant a safety hazard?

Yes — coolant at 50–250 bar can inject into the skin, cause blindness if it contacts the eyes, and deliver enough force to knock a person off balance. All high-pressure coolant connections must be shielded, pressure relief valves must be fitted, and the system must include automatic shutoff on pressure loss.

What is the most common safety violation on deep hole drilling machines?

Bypassed or defeated interlocked guards are the most common safety violation. Operators occasionally bypass door interlocks to observe the drilling process or adjust coolant flow. This is extremely dangerous on deep hole drilling machines because the rotating drill shank and high-pressure coolant are not visible from the bypassed access point.

How often should safety systems be tested?

Safety interlocks should be tested at every startup. E-stop buttons should be tested weekly. Light curtains should be tested daily (built-in self-test) and verified with a test piece monthly. Pressure relief valves should be function-tested quarterly. Full system safety verification should be performed annually.

Do I need special guarding for BTA drilling vs gun drilling?

Yes — BTA drilling produces hot, heavy chips at high ejection velocity. The chip discharge area requires guarding capable of containing high-temperature chips. Gun drilling produces fine chips at lower velocity, so chip containment is less demanding. However, the high-pressure coolant hazard is greater in gun drilling (higher pressure).


Machine safety is not a one-time design activity. It requires regular inspection, testing, and updating as the machine ages and operating conditions change. This article reflects industry practice as of 2026.

Deep Hole Drilling Hub — Your Trusted Third-Party Industry Resource